WO2014187068A1 - Procede et dispositif de commande de puissance de liaison montante - Google Patents

Procede et dispositif de commande de puissance de liaison montante Download PDF

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Publication number
WO2014187068A1
WO2014187068A1 PCT/CN2013/085333 CN2013085333W WO2014187068A1 WO 2014187068 A1 WO2014187068 A1 WO 2014187068A1 CN 2013085333 W CN2013085333 W CN 2013085333W WO 2014187068 A1 WO2014187068 A1 WO 2014187068A1
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Prior art keywords
cell
power control
load
cell cluster
type
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PCT/CN2013/085333
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English (en)
Chinese (zh)
Inventor
罗泽宙
庄宏成
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华为技术有限公司
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Publication of WO2014187068A1 publication Critical patent/WO2014187068A1/fr
Priority to US14/947,522 priority Critical patent/US9801144B2/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/02Arrangements for optimising operational condition
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/242TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters taking into account path loss
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/30TPC using constraints in the total amount of available transmission power
    • H04W52/34TPC management, i.e. sharing limited amount of power among users or channels or data types, e.g. cell loading
    • H04W52/343TPC management, i.e. sharing limited amount of power among users or channels or data types, e.g. cell loading taking into account loading or congestion level
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0473Wireless resource allocation based on the type of the allocated resource the resource being transmission power
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/06TPC algorithms
    • H04W52/14Separate analysis of uplink or downlink
    • H04W52/146Uplink power control

Definitions

  • Embodiments of the present invention relate to the field of communications, and, more particularly, to a method and apparatus for uplink power control. Background technique
  • the basic operating point control parameters of the uplink power include the uplink power reference value PO_PUSCH (PO) and the path loss compensation factor ⁇ . Since the basic operating point does not depend on the user's dynamic measurement feedback, it is also called open loop control. parameter.
  • the dynamic offset control parameters include control factors and direct control parameters related to the transmission format, the specific values of which depend on the dynamic measurement feedback of a single user, and are therefore also referred to as closed-loop control parameters.
  • the basic operating point control parameter PO- PUSCH is divided into cell parameters Pcell- specl f 1C level and user-level parameters P UE - specific, cell level parameters is a cell-wide unified parameters, the user level parameters for a single user, to Compensate for the user's system deviation or measurement error.
  • basic operating point parameters can be used to optimize long-term performance at the cell or network level, and dynamic offset parameters can be used to optimize short-term performance for individual users.
  • the correction value POffset(APL) for the PO-PUSCH is determined according to the path loss between the serving UE and the victim cell (Victim Cell), thereby optimizing the parameter PO-PUSCH, improving The edge throughput of the cell.
  • this type is mainly optimized for the single-user uplink power control parameter P UE — speciflc .
  • the cell-level parameters P cell — speciflc and the path loss compensation factor ⁇ cannot be optimized, and the long-term performance at the cell or network level cannot be optimized.
  • the embodiments of the present invention provide a method and a device for uplink power control, which can overcome the problem of unbalanced load between cells.
  • a method for uplink power control comprising: acquiring multiple small Upstream load information of the area; identifying a first type of cell and a second type of cell in the multiple cells, where an uplink load of the first type of cell exceeds a predetermined threshold, and an uplink load of the second type of cell is less than or equal to the a predetermined threshold; determining at least one cell cluster according to the neighbor relationship of the first type of cell, the second type of cell, and the plurality of cells, wherein any one of the at least one cell cluster includes at least one of the first a class cell and a first type of cell or a second type of cell adjacent to the at least one first type of cell; performing uplink power control parameter joint optimization on each of the at least one cell cluster.
  • the specific implementation is: the cell cluster includes one of the first type of cells; or any one of the first type of cells in the cell cluster and the closest first class The cells are separated by a second type of cell at most.
  • a cell cluster is specifically implemented as: determining that the first type of cell is a member of the cell cluster; determining that the first type of cell or the second type of cell adjacent to the first type of cell in the cell cluster is a member of the cell cluster Determining that the first type of cell adjacent to the second type of cell in the cell cluster is a block of the cell cluster.
  • the method further includes: acquiring a neighboring area of the multiple cells relationship.
  • the at least The uplink power control parameter joint optimization of each cell cluster of a cell cluster is specifically implemented as: determining uplink power control adjustment parameters of each cell in the first cell cluster of the at least one cell cluster; to each cell in the first cell cluster The uplink power control adjustment parameters of the respective cells are respectively sent to perform uplink power control adjustment in the respective cells.
  • determining an uplink power control adjustment parameter of each cell in the first cell cluster of the at least one cell cluster is implemented as follows: a gradient determining a cell cluster uplink power control adjustment parameter of the first cell cluster, the load function being a function of an average uplink load of the first cell cluster relative to an uplink power control parameter of the first cell cluster, the gradient being the load Uplink power control of the cell cluster relative to the first cell cluster a partial derivative of the parameter, the cell cluster uplink power control parameter of the first cell cluster is a vector formed by an uplink power control parameter of each cell in the first cell cluster, and the cell cluster uplink power control adjustment parameter of the first cell cluster The cell cluster uplink power control parameter adjusted for the first cell cluster.
  • determining, by the gradient of the load function, the cell cluster uplink power control adjustment parameter of the first cell cluster is implemented as: according to the load function The gradient determines at least one candidate average uplink load, the at least one candidate average uplink load is an average uplink load corresponding to a minimum value point of the load function; determining a smallest one of the at least one candidate average uplink load as the first cell cluster The average uplink load to be adjusted; determining the cell cluster uplink power control parameter corresponding to the average uplink load to be adjusted is the cell cluster uplink power control adjustment parameter of the first cell cluster.
  • determining, according to the gradient of the load function, the at least one candidate average uplink load is implemented as: acquiring the load function when the gradient is zero At least one extreme point; determining that an average uplink load corresponding to one of the at least one extreme points is one of the at least one candidate average uplink load.
  • determining, according to the gradient of the load function, the at least one candidate average uplink load is specifically implemented as: randomly selecting or selecting the first according to a predetermined policy.
  • At least one cell cluster uplink power control parameter of the cell cluster determining, according to the negative gradient curve of the gradient, one of the at least one cell cluster uplink power control parameter, the average uplink load corresponding to the pole d and the value point of the load function convergence is the at least A candidate average uplink load.
  • determining, according to the gradient of the load function, the at least one candidate average uplink load is specifically implemented as: one of the at least one candidate average uplink load Performing a random offset on the curve corresponding to the load function to obtain an offset uplink power control parameter of the first cell cluster; determining, according to the negative gradient curve of the gradient formula, the offset uplink power control parameter converges at the load function
  • the average uplink load corresponding to the small value point is the candidate average uplink load.
  • a cooperative node device includes: an acquiring unit, acquiring uplink load information of multiple cells; and an identifying unit, identifying a first type of cell and a second type of cell in the multiple cells, where The uplink load of the first type of cell exceeds a predetermined threshold, and the uplink load of the second type of cell is less than or equal to the predetermined threshold; and the determining unit is configured according to the first type of cell, the second type of cell, and the plurality of cells
  • the neighbor relationship determines at least one cell cluster, wherein the at least one small Any one of the clusters of the cluster includes at least one first type of cell and a first type of cell or a second type of cell adjacent to the at least one of the first type of cells; a power control adjusting unit, the at least one cell cluster Each cell cluster performs joint optimization of uplink power control parameters.
  • the specific implementation is: the cell cluster includes one of the first type of cells; or any one of the first type of cells in the cell cluster and the closest first class The cells are separated by a second type of cell at most.
  • the determining unit is specifically implemented to: determine that the first type of cell is a member of the cell cluster; The first type of cell or the second type of cell adjacent to the first type of cell in the cell cluster is a member of the cell cluster; and the first type of cell adjacent to the second type of cell in the cell cluster is determined to be the cell cluster. member.
  • the specific implementation is as follows: The neighbor relationship of the plurality of cells.
  • the power control The adjusting unit is specifically implemented to: determine an uplink power control adjustment parameter of each cell in the first cell cluster of the at least one cell cluster; and send, to each cell in the first cell cluster, an uplink power control adjustment parameter of each cell, so that the respective cells perform Upward power control adjustment.
  • the power control adjustment unit determines an uplink power control adjustment parameter of each cell in the first cell cluster of the at least one cell cluster And determining, according to the gradient of the load function, a cell cluster uplink power control adjustment parameter of the first cell cluster, where the load function is a function of an average uplink load of the first cell cluster relative to an uplink power control parameter of the first cell cluster, The gradient is a partial derivative of the load function relative to the cell cluster uplink power control parameter of the first cell cluster, and the cell cluster uplink power control parameter of the first cell cluster is an uplink function of each cell in the first cell cluster.
  • the vector consisting of the control parameters, the cell cluster uplink power control adjustment parameter of the first cell cluster is the cell cluster uplink power control parameter adjusted by the first cell cluster.
  • the power control adjustment unit specifically includes: a first determining subunit, configured to determine, according to a gradient of the load function, at least one candidate average uplink Load, the at least one candidate average uplink load is the load function An average uplink load corresponding to the minimum value point; a second determining subunit, configured to determine a minimum one of the at least one candidate average uplink load as an average uplink load to be adjusted by the first cell cluster; a third determining subunit, The uplink power control parameter corresponding to the average uplink load to be adjusted is an uplink power control adjustment parameter of the first cell cluster.
  • the first determining sub-unit is specifically implemented to: obtain at least one extreme point of the load function when the gradient is zero;
  • the average uplink load corresponding to one of the at least one extreme points is one of the at least one candidate average uplink load.
  • the first determining sub-unit is specifically implemented to: randomly select or select at least one cell cluster of the first cell cluster according to a predetermined policy Uplink power control parameter; determining, according to the negative gradient curve of the gradient, an average uplink load corresponding to one of the at least one cell cluster uplink power control parameter at a minimum value point where the load function converges is the at least one candidate average uplink load.
  • the first determining sub-unit is specifically implemented as: a curve corresponding to the load function of one of the at least one candidate average uplink load Performing a random offset to obtain an offset uplink power control parameter of the first cell cluster; determining, according to the negative gradient curve of the gradient formula, an average uplink corresponding to the minimum value point of the offset uplink power control parameter convergence in the load function
  • the load is the candidate average uplink load.
  • the method and device for uplink power control distinguishes an overloaded cell according to uplink load information of multiple cells, and divides the overloaded cell and its adjacent light load cell into a cell cluster to perform uplink.
  • the power control parameters are jointly optimized, so that the uplink interference in the cell cluster can be effectively coordinated, and the problem of load imbalance between cells is overcome.
  • FIG. 1 is a flow chart of a method for uplink power control according to an embodiment of the present invention.
  • FIG. 2 is a flow chart of a method for cell clustering according to an embodiment of the present invention.
  • FIG. 3 is a schematic diagram of a scenario in which a cell is clustered according to an embodiment of the present invention.
  • FIG. 4 is an interaction flowchart of cell cluster joint optimization according to an embodiment of the present invention.
  • FIG. 5 is another interaction flowchart of cell cluster joint optimization according to an embodiment of the present invention.
  • FIG 6 is another interaction flowchart of cell cluster joint optimization according to an embodiment of the present invention.
  • FIG. 7 is a schematic structural diagram of a cooperative node device according to an embodiment of the present invention.
  • FIG. 8 is another schematic structural diagram of a cooperative node device according to an embodiment of the present invention. detailed description
  • WiMax Wireless Microwave Access
  • LTE Long Term Evolution
  • FDD frequency division duplex
  • TDD Time Division Duplex
  • a terminal which may be called a user equipment (UE, User Equipment), a mobile station (MS, Mobile Station), a user equipment, etc., may be connected to one or more cores via a Radio Access Network (RAN).
  • the network communicates, which may be a mobile terminal, such as a mobile phone (or "cellular" phone) and a computer with a mobile terminal, for example, a mobile device that can be portable, pocket, handheld, computer built, or in-vehicle, Exchange language with wireless access networks and
  • the base station may be a base station (BTS, Base Transceiver Station) in GSM or CDMA, or may be a base station (NodeB) in WCDMA, or may be an evolved base station (eNB or e-NodeB, evolutional Node B) in LTE.
  • BTS Base Transceiver Station
  • NodeB base station
  • eNB evolved base station
  • e-NodeB evolutional Node B
  • the co-node represents a unit of the coordinated multi-standard network.
  • the cooperative node is deployed in any location and can be deployed separately. For example, it can be deployed in an independent element management system (EMS) entity or in a mobile management entity.
  • EMS independent element management system
  • MME Mobility Management Entity
  • gateway gateway
  • controller controller
  • base station in other words, collaboration section Points can be stand-alone devices or deployed in other devices.
  • FIG. 1 is a flow chart of a method for uplink power control according to an embodiment of the present invention. The method of Figure 1 is performed by a coordinated node.
  • the uplink load of the first type of cell exceeds a predetermined threshold, and the uplink load of the second type of cell is less than or equal to the predetermined threshold.
  • the first type of cell is an overloaded cell
  • the second type of cell is a normal cell.
  • the any one of the at least one cell cluster includes at least one first type of cell and a first type of cell or a second type of cell adjacent to the at least one first type of cell.
  • the overloaded cell is distinguished according to the uplink load information of the multiple cells, and the overloaded cell and its adjacent light load cell are allocated to the cell cluster to perform uplink power control parameter joint optimization, thereby effectively coordinating the cell cluster.
  • the uplink interference overcomes the problem of unbalanced load between cells.
  • the uplink power control parameters of the cell are adjusted by clustering, thereby effectively ensuring the stability of the network state and reducing the optimization overhead.
  • the uplink load information of multiple cells is obtained by the base station where the cell is located.
  • the cell uplink load information sent by the cell C can be obtained by the base station of the cell C according to the transmit power of the user in the cell C, the path loss of the user to the cell in the cell C, and the bandwidth rate required by the user in the cell C.
  • the uplink load information for the cell C can be obtained by the following formula.
  • p m represents the signal power of the user m to the cell c in the cell c
  • ⁇ ⁇ ⁇ represents the path loss of the user m to the cell c in the cell c
  • represents the signal strength of the user m received by the cell c.
  • n n represents the user cell noise power
  • IV represents the average transmission time of the user m , and is obtained by the base station
  • M d represents the user set of the cell d, 1 .
  • w is the band efficiency factor, usually estimated by experience, representing the SINR efficiency factor, usually estimated empirically, representing the rate required for the mth user service, representing the bandwidth required for the mth user service.
  • the W £ is the total number of resource blocks of the cell c, and indicates the number of resource blocks owned by the cell c, and indicates the number of resource blocks (RBs) occupied by the service used by the user m.
  • 5 £ represents the load occupancy ratio of the cell c.
  • cell c can obtain uplink load information of cell c.
  • the method further includes: acquiring a neighbor relationship of the multiple cells. After acquiring the uplink load information of the cell, the cell may be classified according to the uplink load information of each cell.
  • a cell classification module implementing step 102 can be as follows:
  • Input uplink load set ⁇ L m , m l,...,M ⁇ , load threshold A
  • the first type of cell set (C H ) and the second type of cell set (cells after the C H is removed) in the plurality of cells can be identified.
  • C H the first type of cell set
  • C H the second type of cell set
  • Ming does not impose restrictions here.
  • a cell cluster in a cell clustering process, includes a first type of cell.
  • any one of the first type of cells in the cell cluster and the closest first type of cell are at most one second type of cell.
  • step 103 determining, according to the first type of cell, the second type of cell, and the neighbor relationship of the multiple cells, the at least one cell cluster may include:
  • step 103c Determine that the first type of cell adjacent to the cell in the cell cluster is a member of the cell cluster. Wherein, step 103b and step 103c can be performed multiple times.
  • a first type of cell can be determined as the first member of the first cell cluster, and it is assumed that the selected first type of cell is an A cell.
  • step 103b small B, CD, E, F, and G can be added to the first cluster.
  • the cell H can be added to the first cell cluster.
  • step 103b cells I, J, K and L can be added to the first cell cluster. At this point, all members of the first cell cluster are determined.
  • the method of determining other cell clusters is similar to this.
  • a cell clustering module that implements the above steps may be as follows:
  • step 104 the uplink power control parameter joint optimization is performed on each of the at least one cell cluster, and the uplink power control adjustment parameter of each cell in the first cell cluster of the at least one cell cluster is determined.
  • Each cell in the first cell cluster separately transmits uplink power control adjustment parameters of the respective cells to perform uplink power control adjustment in the respective cells.
  • determining the uplink power control adjustment parameter of each cell in the first cell cluster of the at least one cell cluster may include: determining a cell cluster uplink power control adjustment parameter of the first cell cluster according to a gradient of the load function, where the load function is The average uplink load of the first cell cluster is relative to the first cell cluster a function of the power control parameter, the gradient is a partial derivative of the load function relative to the uplink cluster power control parameter of the first cell cluster, and the cell cluster uplink power control parameter of the first cell cluster is the first cell cluster
  • the vector of the uplink power control parameters of each cell, the uplink cluster power control adjustment parameter of the first cell cluster is the uplink cluster power control parameter of the first cell cluster.
  • the average uplink load in the first cell cluster can actually be expressed by equation (7).
  • a method for solving equation (8) which can be determined by calculating a gradient of ⁇ relative to ⁇
  • H £ can be expressed by the formula ( 10 ), which can be expressed by the formula ( 11 ), and / £ can be expressed by the formula ( 12 ).
  • H c [ ⁇ ⁇ d7 (JC) . ( 10 )
  • the bandwidth requested by the user of X, H £ reflects the average signal strength in area 4 of area cell c. G, -dT c (x). ( 11 ) where ⁇ ⁇ ( ⁇ ) represents the user location distribution of cell c (
  • the cell is in the received signal strength from the location x t
  • T x represents the maximum received maximum signal power of the cell c, and represents the path loss value of the received signal power of the cell c, and represents the path loss distribution of the cell c.
  • the function ⁇ ( ⁇ , , ⁇ >0 is used instead of the function min(a,b), the value of the function min
  • the user position distribution is usually given in the form of a grid, that is, the coverage area is divided into regular shape areas (such as a 50mx50m square grid), and the user position distribution can be obtained by counting the number of users in each grid.
  • road loss distribution information it can usually be obtained based on electronic map and road loss model simulation.
  • the path loss model can also be modified in combination with the result of the cell measurement to obtain a more accurate path loss model, which is not limited herein.
  • determining, according to the gradient of the load function, the cell cluster uplink power control adjustment parameter of the first cell cluster may be implemented as: determining, according to the gradient of the load function, at least one candidate average uplink load, where the at least one candidate average uplink load is the load function Determining an average uplink load corresponding to the minimum value point; determining a minimum one of the at least one candidate average uplink load as an average uplink load to be adjusted by the first cell cluster; determining a cell cluster corresponding to the average uplink load to be adjusted
  • the uplink power control parameter is an uplink power control adjustment parameter of the cell cluster of the first cell cluster.
  • the load function is the first
  • the average uplink load of the cell cluster is a function of the cell cluster uplink power control parameter of the first cell cluster.
  • determining, according to the gradient of the load function, the at least one candidate average uplink load may be implemented as: acquiring at least one minimum value point when the load function is zero; determining the at least one minimum value The average uplink load corresponding to one of the points is one of the at least one candidate average uplink load.
  • the cooperative node may solve the formula (9) according to the formula (10) to the formula (15), and obtain the corresponding extreme point of the load function of the first cell cluster when the gradient is zero.
  • the first cell cluster is one of the clusters to be adjusted by the coordinated node, and the extreme point represents the extreme point on the load curve of the load function ⁇ ( ⁇ ), and the extreme points of the load function generally exist.
  • the maximum and minimum values may be included in this series of extreme points, it is obvious that the minimum value may only be less than or equal to the minimum minimum value, or the minimum minimum value is the most even if it is not the minimum value. The extreme point close to the minimum.
  • the cooperative node can respectively extract the average uplink load corresponding to the extreme point, and then select an extreme point with the smallest average uplink load, and determine the uplink power control parameter corresponding to an extreme point with the smallest average uplink load as the first The uplink power control adjustment parameter of a cell cluster.
  • determining, according to the gradient of the load function, the at least one candidate average uplink load may be implemented as: randomly selecting or selecting at least one cell cluster uplink power control parameter of the first cell cluster according to a predetermined policy; The negative gradient curve of the gradient determines that an average uplink load corresponding to one of the at least one cell cluster uplink power control parameter at the minimum value point at which the load function converges is the at least one candidate average uplink load. .
  • the cooperative node may randomly select at least one cell cluster uplink power control parameter of the first cell cluster, or may select at least one cell cluster uplink power control parameter of the first cell cluster according to a predetermined policy.
  • the uplink power control parameter of one cell cluster of the first cell cluster is a vector formed by an uplink power control parameter of each cell in the first cell cluster.
  • the cooperative node can obtain the function value of the convergence of the uplink power control parameters of each cell cluster in the load function according to the negative gradient curve of the load function according to the formula (9) to the formula (15). Obviously, the function value of each cell cluster uplink power control parameter corresponding to convergence is a minimum value point.
  • the cooperative node may respectively extract the average uplink load corresponding to the extreme point, and then select an extreme point with the smallest average uplink load, and determine the uplink power control parameter corresponding to an extreme point with the smallest average uplink load as the first cell.
  • the uplink power control adjustment parameters of the cluster may respectively extract the average uplink load corresponding to the extreme point, and then select an extreme point with the smallest average uplink load, and determine the uplink power control parameter corresponding to an extreme point with the smallest average uplink load as the first cell.
  • determining, according to the gradient of the load function, the at least one candidate average uplink load may include: after determining at least one candidate average uplink load of the first cell cluster according to the gradient of the load function, at least Selecting the first candidate level from a candidate average uplink load All of the uplink load, the first candidate average uplink load is randomly offset on the curve corresponding to the load function to obtain the offset uplink power control parameter of the first cell cluster; determining the offset uplink according to the negative gradient curve of the gradient formula The average uplink load corresponding to the minimum value point at which the power control parameter converges is the candidate average uplink load.
  • the cooperative node may select one of the one or more candidate average uplink loads, which may be assumed as the first candidate average uplink load.
  • the first candidate average uplink load is randomly offset on the curve corresponding to the load function ⁇ ( ⁇ ) to obtain the offset uplink power control parameter corresponding to the first candidate average uplink load.
  • as the ordinate
  • X as the abscissa
  • ⁇ + ⁇ is the offset uplink power control parameter, corresponding to the ordinate represented by the point on the curve.
  • + ⁇ is the average uplink load corresponding to X + ⁇ .
  • the cooperative node can obtain the function value of the offset uplink power control parameter X + ⁇ converging in the load function ⁇ ( ⁇ ) by the negative gradient curve of the load function ⁇ ( ⁇ ) according to the formula (9) to the formula (15), that is,
  • the coordinate ( ⁇ + ⁇ , ⁇ + ⁇ ) is a function value of the negative gradient curve of the load function ⁇ ( ⁇ ) that converges in the load function ⁇ ( ⁇ ).
  • Embodiments A, B, and C of the present invention are three modes for obtaining a candidate average uplink load according to an embodiment of the present invention.
  • the manner in which the candidate average uplink load is obtained in the embodiment of the present invention may also be used in combination.
  • the embodiment of the present invention has another manner of obtaining the candidate average uplink load, which is not limited herein.
  • the following is a specific implementation of obtaining a candidate average uplink load in the embodiment of the present invention.
  • Input the first set of cells in the cluster, Gk, the distribution of users in the corresponding area, T(x), the distribution of path loss in the area, L(x)
  • the ConstructInitialSolution() function performs initialization of the search starting point.
  • the most common one is random initialization, that is, the uplink power control parameter (P cell specific, random value) in the given range of the standard, in the uplink power control parameter optimization problem to be solved in this solution, all can also be made.
  • the cell takes the same parameter settings, and the specific values are generated in a random manner.
  • the LocalSearch(X) function performs an optimized search starting from X.
  • IP Interior Point approach
  • the interior point method converts the constrained optimization problem of equation (8) into an optimization problem without constraints, as shown in equation (16).
  • Ne is the number of current cluster edge cells.
  • a commonly used iterative method to solve the optimization problem (16) is the negative gradient method, that is, each iteration can converge to the best advantage in the opposite direction of the current gradient.
  • formula (9) can be used.
  • the result of (15) calculates the negative gradient of equation (16).
  • other methods of obtaining the gradient, and other methods for solving the optimization problem (8) are not excluded, and the embodiments of the present invention are not limited herein.
  • the Perturbation (X bes t, SearchHistory) function randomly perturbs the current best advantage X best according to SearchHistory.
  • the purpose of the disturbance is to prevent the search from falling into the local minimum point. If the current search falls into the local minimum point, the traditional search method cannot search for other positions. If a random offset is made to the position of the local minimum point, then there is It is possible to make the search method jump out of the local minimum point to find a better location.
  • the AcceptanceCriterion(X b est, Xcandidate, SearchHistory) function compares the current best X candidate and the previous best X best according to SearchHistory, so that a better position is selected in X ca ndid a te and X best for subsequent search. .
  • stopCondition which is the condition for finding the pole d and terminating the point.
  • SearchHistory records all of the search records for minimum points.
  • the coordinated node may select a minimum candidate average uplink load from all candidate average uplink loads as the target of regulation after obtaining the candidate average uplink load, the minimum Uplink power control parameters corresponding to the candidate average uplink load That is, the uplink power control adjustment parameters of the cooperative node.
  • the message interaction between the cooperative node and the cell may be different due to the location of the cooperative node.
  • FIG. 4 is an interaction flowchart of cell cluster joint optimization according to an embodiment of the present invention.
  • the collaborative node is deployed on the base station.
  • the cooperative node actually performs message interaction with multiple cells similar to the cell c under the cooperative node.
  • the cell c sends the neighbor list information to the cooperative node.
  • Any cell c under the coordinating node can send neighbor list information to the coordinating node.
  • the base station where the cell c is located may send the neighbor list information by using the X2-AP base station configuration update (ENB CONFIGURATION UPDATE) message defined in TS36.423, and the message may include the neighbor list information of the cell c itself.
  • ENB CONFIGURATION UPDATE X2-AP base station configuration update
  • the cell c sends uplink load information to the cooperative node.
  • the base station where the cell c is located can use the X2-AP message RESOURCE STATUS UPDATE defined in TS36.423 to send uplink load information, which can carry the uplink load information (RB utilization rate) of the base station itself.
  • the cooperative node sends an uplink power control parameter configuration request to the cell c.
  • the clustering information of the cell cluster is first obtained.
  • the cell identifier list of each cluster may include identifiers of all cells (including a central cell and an edge cell) of the cluster.
  • the coordinated node sends the updated uplink power control parameter value to each cell in the cell cluster.
  • the configuration update message received by the cell c includes the new uplink power control parameter configuration of the cell c, and specifically includes the cell-level uplink power control parameters P ⁇ ii — specif k and ⁇ .
  • cell c needs to update the local parameter configuration and the corresponding system information field.
  • the system information field may include: a) a cell-level uplink power control parameter P cell specific and a in the SIB type 2 message; b) a systemInfofoTag field in the SIB typel message.
  • the base station can change the power control settings through a newly defined X2-AP message.
  • the uplink load information of the cell C where the uplink power control setting change request message carries the parameters P cell — specifc and ⁇ that the cooperative node instructs the base station to update.
  • Table 1 is a table structure diagram of an uplink power control setting change request message.
  • the cell c sends the uplink power control parameter adjustment confirmation information to the coordinated node.
  • the cell c adjusts its own uplink power control parameters according to the message sent by the coordinated node that carries the uplink power control adjustment parameter. After the adjustment is completed, the cell c needs to feed back a confirmation message to the coordination node.
  • the cell c can define a new X2-AP message uplink power control setting change confirmation (UPLINK POWER CONTROL CHANGE ACKNOWLEDGE) message sending confirmation message, and its table structure diagram can be as shown in Table 2.
  • UPLINK POWER CONTROL CHANGE ACKNOWLEDGE uplink power control setting change confirmation
  • the coordinated node broadcasts the uplink common parameter configuration of the cell c.
  • the cooperative node sends a broadcast indication ( broadcastUlpcSettingChange) message for updating the system information to the cell under the base station controlled by the coordinated node, where the broadcast indication message is used to notify the cell to notify the user in the cell to update the system information through the Paging process, in the embodiment of the present invention,
  • the system information is the uplink power control parameters PcelLspecific and 01.
  • the cell c sends a Paging message to the user m in the cell.
  • the cell c notifies all users in the cell to read the updated cell-level uplink power control parameters P cell — speciflc and a according to the cell system information update procedure.
  • the uplink power control parameters P celLspeciflc and ⁇ are system configuration information that are sent to the terminal through a specific system message.
  • the system information in LTE is sent through two types of messages: MasterlnformationBlock (MIB) and SystemlnformationBlocks (SIB).
  • MIB contains the most basic information of the system (bandwidth, PHICH channel configuration and system frame number).
  • SIB defines 13 types in R10 according to different functions. SIBs are named SIB typel ⁇ 13, respectively, where SIB typel contains scheduling information of other SIBs.
  • MIB and SIB tyepl are the most basic system messages, so they are mapped to the BCH and transmitted in fixed periods.
  • SIB types 2 to 13 are mapped to the DL-SCH, and SIB typel specifies the scheduling information of each SIB. SIB types 2 to 13 are also periodically transmitted, but their periods can be specified by the system and indicated in SIB typel.
  • the message path of the uplink power control parameter P cell — speciflc and ⁇ is: SystemInformationBlockType2 ⁇ RadioResourceConfigCommonSIB ⁇ UplinkPower ControlCommon.
  • the cell c may send a Paging message with the systemInfoModification field set to all users in the cell, and notify the user to read Updated uplink power control parameters.
  • the user m who has not received the paging message may also actively query the systemInfofoValueTag in the SIB typel message in the current Modification Period, thereby discovering the uplink power control parameter update, and reading the updated parameter value in the next Modification Period.
  • FIG. 5 is another interaction flowchart of cell cluster joint optimization according to an embodiment of the present invention.
  • the collaboration node is deployed on a Mobility Management Entity (MME).
  • MME Mobility Management Entity
  • the cooperative node actually performs message interaction with multiple cells similar to the cell c under the cooperative node.
  • the cell c sends the neighbor list information to the cooperative node.
  • Any cell c under the coordinating node can send neighbor list information to the coordinating node.
  • the base station where the cell c is located may send the neighbor list information by using the S1-AP message base station configuration update (ENB CONFIGURATION UPDATE) message defined in TS 36.413, and the message may include the neighbor list information of the cell c itself.
  • ENB CONFIGURATION UPDATE S1-AP message base station configuration update
  • the table structure of the base station configuration update message may be as shown in 3. Parameter name exists parameter range parameter type and phase semantic description error after diagnosis parameter
  • the cell c sends uplink load information to the cooperative node.
  • the base station where the cell c is located may use the S1-AP message eNB DIRECT INFORMATION TRANSFER message defined by TS 36.423, where the message may carry the uplink load information of the base station.
  • the message eNB DIRECT INFORMATION TRANSFER is used to deliver the RIM PDU to the peer eNB.
  • the MME advertises that the MME does not parse the RIM PDU when receiving the message.
  • the address may be used to fill in the peer eNB address.
  • the eNB DIRECT INFORMATION TRANSFER/RIM/RIM Routing Address field of the message is specially identified.
  • the destination address (eNB DIRECT INFORMATION TRANSFER/RIM/RIM Transfer/RIM Information/ Destination Cell Identifier) in the RIM PDU is specially identified, such as all 0s or all 1s (as shown in Table 4).
  • the MME can parse the The RIM PDU of the message is used to obtain an uplink load measurement report, thereby obtaining an uplink load of the cell.
  • the cooperative node sends an uplink power control parameter configuration request to the cell c.
  • each cluster is a cell identifier list, and includes identifiers of all cells (including a central cell and an edge cell) of the cluster.
  • the cooperative node sends the updated uplink power control parameter values cluster by cluster and cell by cell.
  • the configuration update message received by the cell c includes the configuration of the new uplink power control parameter of the cell c, which may specifically include the cell-level uplink power control parameter.
  • the system information field may include: a) a cell-level uplink power control parameter Pceii specific and a in the SIB type2 message; b) a systemInfofoValueTag field in the SIB typel message.
  • the MME may send an uplink power control parameter configuration request to the cell c through the S1-AP message MME CONFIGURATION TRANSFER message defined by TS 36.423.
  • MME CONFIGURATION TRANSFER/SON Configuration Transfer/SON Information is shown in Table 6.
  • Change Request is a new part used to identify cell-level uplink power control parameter information.
  • the cell c sends the uplink power control parameter adjustment confirmation information to the coordinated node.
  • the cell c adjusts its own uplink power control parameters according to the message sent by the coordinated node that carries the uplink power control adjustment parameter. After the adjustment is completed, the cell c needs to feed back a confirmation message to the coordination node.
  • the coordinated node broadcasts the uplink common parameter configuration of the cell c.
  • the cooperative node sends a broadcast indication ( broadcastUlpcSettingChange) message for updating the system information to the cell under the base station controlled by the coordinated node, where the broadcast indication message is used to indicate that the cell passes
  • broadcast indication broadcastUlpcSettingChange
  • the Paging process notifies the user in the cell to update the system information.
  • the system information The cell C notifies all users in the cell to read the updated cell-level uplink power control parameters P cell — speciflc and ⁇ according to the cell system information update procedure.
  • the uplink power control parameters P celLspeciflc and ⁇ are system configuration information that are sent to the terminal through a specific system message.
  • the system information in LTE is sent through two types of messages: MasterlnformationBlock (MIB) and SystemlnformationBlocks (SIB).
  • MIB contains the most basic information of the system (bandwidth, PHICH channel configuration and system frame number).
  • SIB defines 13 types in R10 according to different functions. SIBs are named SIB typel ⁇ 13, and SIB typel contains scheduling information of other SIBs.
  • MIB and SIB tyepl are the most basic system messages, so they are mapped to the BCH and transmitted in fixed periods.
  • SIB types 2 to 13 are mapped to the DL-SCH, and SIB typel specifies the scheduling information of each SIB. SIB types 2 to 13 are also periodically transmitted, but their periods can be specified by the system and indicated in SIB typel.
  • the message path of the uplink power control parameter P cell — speciflc and ⁇ is: SystemInformationBlockType2 ⁇ RadioResourceConfigCommonSIB ⁇ UplinkPower ControlCommon.
  • the cell c may send a Paging message with the systemlnfoModification field set to all users in the cell, and notify the user m to read the updated uplink power control parameter.
  • the user m who has not received the Paging message can also actively query the systemlnfoValueTag in the SIB typel message in the current Modification Period to find the uplink power control parameter update, and read the updated parameter value in the next Modification Period.
  • FIG. 6 is another flow chart of interaction of cell cluster joint optimization according to an embodiment of the present invention.
  • the collaborative node is deployed on an independent Element Management System (EMS) entity.
  • EMS Element Management System
  • the cooperative node actually performs message interaction with multiple cells similar to the cell c under the cooperative node.
  • the cell c sends the neighbor list information to the cooperative node.
  • the base station where the cell c is located may send a neighbor list message to the coordinated node, where the message may include a neighboring cell identifier of all cells in the base station.
  • the base station where the cell c is located and the coordinated node may not transmit information through a standard interface.
  • the cell c sends uplink load information to the coordinated node.
  • the base station where the cell c is located may send an uplink load (UpLinkLoad) message to the coordinated node, where the uplink load message may include uplink load statistics in the current statistical period.
  • UpLinkLoad uplink load
  • the cooperative node sends an uplink power control parameter configuration request to the cell c.
  • each cluster is a cell identifier list, and includes identifiers of all cells (including a central cell and an edge cell) of the cluster.
  • the cooperative node sends the updated uplink power control parameter values cluster by cluster and cell by cell.
  • the configuration update message received by the cell c includes the configuration of the new uplink power control parameter of the cell c, which may specifically include the cell-level uplink power control parameter.
  • the system information field may include: a) a cell-level uplink power control parameter in the SIB type2 message PceiLspecific and a; b) a systemInfofoValueTag field in the SIB typel message.
  • the cell c sends the uplink power control parameter adjustment confirmation information to the coordinated node.
  • the cell c adjusts its own uplink power control parameters according to the message sent by the coordinated node that carries the uplink power control adjustment parameter. After the adjustment is completed, the cell C needs to feed back a confirmation message to the coordination node.
  • the coordinated node broadcasts the uplink common parameter configuration of the cell c.
  • the cooperative node sends a broadcast indication ( broadcastUlpcSettingChange) message for updating the system information to the cell under the base station controlled by the coordinated node, where the broadcast indication message is used to notify the cell to notify the user in the cell to update the system information through the Paging process, in the embodiment of the present invention,
  • the system information is the uplink power control parameters Pcell specific and 01.
  • the cell c sends a Paging message to the user m in the cell.
  • the cell c notifies all users in the cell to read the updated small and alpha according to the cell system information update procedure.
  • is a system configuration message that is sent to the terminal through a specific system message.
  • the system information in LTE is sent through two types of messages: MasterlnformationBlock (MIB) and SystemlnformationBlocks (SIB).
  • MIB contains the most basic information of the system (bandwidth, PHICH channel configuration and system frame number).
  • SIB defines 13 types in R10 according to different functions. SIB, named SIB typel ⁇ 13, respectively, where SIB typel contains Its SIB scheduling information.
  • MIB and SIB tyepl are the most basic system messages, so they are mapped to the BCH and transmitted in fixed periods. SIB types 2 to 13 are mapped to the DL-SCH, and SIB typel specifies the scheduling information of each SIB.
  • SIB types 2 to 13 are also periodically transmitted, but their periods can be specified by the system and indicated in SIB typel.
  • the message path of the uplink power control parameter P cell — speciflc and ⁇ is: SystemInformationBlockType2 ⁇ RadioResourceConfigCommonSIB ⁇ UplinkPower ControlCommon.
  • the cell c may send a Paging message with the systemlnfoModification field set to all users in the cell, and notify the user m to read the updated uplink power control parameter.
  • the user m who has not received the Paging message can also actively query the systemlnfoValueTag in the SIB typel message in the current Modification Period to find the uplink power control parameter update, and read the updated parameter value in the next Modification Period.
  • the embodiment of the present invention is not limited to the message format shown in the embodiment of the present invention.
  • FIG. 7 is a schematic structural diagram of a cooperative node device 700 according to an embodiment of the present invention.
  • the cooperative node device 700 may include an obtaining unit 701, an identifying unit 702, a determining unit 703, and a power control adjusting unit 704.
  • the obtaining unit 701 can obtain uplink load information of multiple cells.
  • the identifying unit 702 can identify the first type of cells and the second type of cells in the multiple cells.
  • the uplink load of the first type of cell exceeds a predetermined threshold, and the uplink load of the second type of cell is less than or equal to the predetermined threshold.
  • the determining unit 703 may determine at least one cell cluster according to the first type of cell, the second type of cell, and the neighbor relationship of the multiple cells. Any one of the at least one cell cluster includes at least one of the first type of cells and a first type of cell or a second type of cell adjacent to the at least one of the first type of cells.
  • the power control adjustment unit 704 may perform uplink power control parameter joint optimization for each of the at least one cell cluster.
  • the cooperative node device 700 distinguishes the overloaded cell according to the uplink load information of multiple cells, and divides the overloaded cell and its adjacent light load cell into the cell cluster to perform joint optimization of uplink power control parameters, and effectively coordinate Uplink interference in the cell cluster overcomes the inter-cell load The problem of balance.
  • the cooperative node device 700 may be deployed on a base station, an MME, a gateway, a controller, or an independent EMS.
  • the obtaining unit 701 may also acquire a neighbor relationship of the multiple cells.
  • the cell cluster determined by the determining unit 703 includes a first type of cell.
  • any one of the first type of cells in the cell cluster determined by the determining unit 703 is at most one second type of cell from the closest first type of cell.
  • the determining unit 703 may determine that the first type of cell is a member of the cell cluster, and determine that the first type of cell or the second type of cell adjacent to the first type of cell in the cell cluster is a member of the cell cluster. And determining that the first type of cell adjacent to the second type of cell in the cell cluster is a block of the cell cluster.
  • the power control adjustment unit 704 may determine uplink power control adjustment parameters of each cell in the first cell cluster of the at least one cell cluster, and send uplink power control adjustment parameters of the respective cells to each cell in the first cell cluster. In order to perform uplink power control adjustment in the respective cells.
  • the power control adjustment unit 704 may determine, according to the gradient of the load function, a power control adjustment parameter of the first cell cluster, where the load function is an uplink power control of the average uplink load of the first cell cluster relative to the first cell cluster.
  • the load function is an uplink power control of the average uplink load of the first cell cluster relative to the first cell cluster.
  • the power control adjustment unit 704 can include a first determination subunit, a second determination subunit, and a third determination subunit.
  • the first determining subunit may determine at least one candidate average uplink load according to the gradient of the load function, where the at least one candidate average uplink load is an average uplink load corresponding to the minimum value point of the load function.
  • the second determining subunit may determine the smallest one of the at least one candidate average uplink load as the average uplink load to be adjusted of the first cell cluster.
  • the third determining sub-unit may determine that the uplink power control parameter corresponding to the average uplink load to be adjusted is an uplink power control adjustment parameter of the first cell cluster.
  • the first determining subunit is specifically configured to acquire at least one extreme point of the load function when the gradient is zero, and determine that an average uplink load corresponding to one of the at least one extreme point is One of the at least one candidate average uplink load.
  • the first determining subunit is specifically configured to randomly select or select at least one set of uplink power control adjustment parameters of the first cell cluster according to a predetermined policy, and according to the gradient The negative gradient curve determines that the average uplink load corresponding to the pole d and the value point of the convergence of the at least one set of the first uplink power control parameters is one of the at least one candidate average uplink load, wherein the at least one group One of the uplink power control adjustment parameters includes an uplink power control adjustment parameter of each cell in the cell cluster.
  • the first determining subunit is specifically configured to: perform random offset on one of the at least one candidate average uplink load on a curve corresponding to the load function to obtain a bias of the first cell cluster.
  • the uplink power control parameter is shifted, and according to the negative gradient curve of the gradient formula, the average uplink load corresponding to the minimum value point of the offset uplink power control parameter convergence in the load function is the candidate average uplink load.
  • the cooperative node device 700 can also perform the functions and embodiments of FIG. 1 and FIG. 2 to implement the functions of the cooperative node in the embodiments shown in FIG. 4, FIG. 5 and FIG. .
  • FIG. 8 is a schematic structural diagram of a cooperative node device 800 according to an embodiment of the present invention.
  • the cooperative node device 800 can include a receiver 804, a transmitter 801, a processor 802, and a memory 803.
  • the receiver 804 can acquire uplink load information of multiple cells.
  • the processor 802 the first type of cells and the second type of cells in the plurality of cells are identified, and at least one cell cluster is determined according to the neighbor relationship of the first type of cells, the second type of cells, and the plurality of cells, and The uplink power control parameter joint optimization is performed on each of the at least one cell cluster by the transmitter 801.
  • the uplink load of the first type of cell exceeds a predetermined threshold, and the uplink load of the second type of cell is less than or equal to the predetermined threshold, and any one of the at least one cell cluster includes at least one first type of cell. And a first type of cell or a second type of cell adjacent to the at least one first type of cell.
  • the memory 804 may be configured to enable the processor 802 to identify the first type of cells and the second type of cells in the plurality of cells, and determine at least one of the neighboring cell relationships of the first type of cells, the second type of cells, and the plurality of cells.
  • the cell clusters, and the transmitter 801 respectively performs an instruction for jointly optimizing the uplink power control parameters for each cell cluster of the at least one cell cluster.
  • the cooperative node device 800 distinguishes the overloaded cell according to the uplink load information of multiple cells, and divides the overloaded cell and its adjacent light load cell into the cell cluster to perform joint optimization of uplink power control parameters, and effectively coordinate
  • the uplink interference in the cell cluster overcomes the problem of unbalanced load between cells.
  • the cooperative node device 800 may further include a transmitter 801, a receiver 804, and the like.
  • the processor 802 controls the operation of the cooperative node device 800, which may also be referred to as a CPU (Central Processing Unit).
  • Memory 803 can include read only memory and random access memory and provides instructions and data to processor 802. A portion of the memory 803 may also include non-volatile random access memory (NVRAM).
  • NVRAM non-volatile random access memory
  • transmitter 801 and receiver 804 can be coupled to antenna 805.
  • the various components of the collaborative node device 800 are coupled together by a bus system 806, which may include, in addition to the data bus, a power bus, a control bus, a status signal bus, and the like. However, for clarity of description, various buses are labeled as bus system 806 in the figure.
  • the method disclosed in the above embodiments of the present invention may be applied to the processor 802 or by the processor.
  • Processor 802 may be an integrated circuit chip with signal processing capabilities. In the implementation process, the steps of the above method may be completed by an integrated logic circuit of hardware in the processor 802 or an instruction in the form of software.
  • the processor 802 described above may be a general purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), an off-the-shelf programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic device, discrete hardware. Component.
  • DSP digital signal processor
  • ASIC application specific integrated circuit
  • FPGA off-the-shelf programmable gate array
  • the methods, steps, and logical block diagrams disclosed in the embodiments of the present invention may be implemented or carried out.
  • the general purpose processor can be a microprocessor or the processor can be any conventional processor or the like.
  • the steps of the method disclosed in connection with the embodiments of the present invention may be directly embodied by the execution of the hardware decoding processor, or by a combination of hardware and software modules in the decoding processor.
  • the software modules can be located in a conventional storage medium such as random access memory, flash memory, read only memory, programmable read only memory or electrically erasable programmable memory, registers, and the like.
  • the storage medium is located in the memory 803, and the processor 802 reads the information in the memory 803 and combines the hardware to perform the steps of the above method.
  • the collaborative node device 800 may be deployed on a base station, an MME, a gateway, a controller, or an independent EMS.
  • the receiver 804 may also acquire a neighbor relationship of the multiple cells.
  • the cell cluster determined by the processor 802 includes a first type of cell.
  • any one of the first type of cells in the cell cluster determined by the processor 802 is at most one second type of cell from the closest first type of cell.
  • the processor 802 may determine that the first type of cell is a member of the cell cluster, and determine that the first type of cell or the second type of cell adjacent to the first type of cell in the cell cluster is the cell cluster.
  • the member determines that the first type of cell adjacent to the second type of cell in the cell cluster is a block of the cell cluster.
  • the processor 802 may determine an uplink power control adjustment parameter of each cell in the first cell cluster of the at least one cell cluster, and send, by using the transmitter 801, uplink power control of each cell to each cell in the first cell cluster. Adjust the parameters so that the respective cells perform uplink power control adjustment.
  • the processor 802 may determine, according to a gradient of the load function, a power control adjustment parameter of the first cell cluster, where the load function is an average uplink load of the first cell cluster relative to an uplink power control parameter of the first cell cluster.
  • the gradient is a partial derivative of the load function relative to an uplink power control parameter of the first cell cluster.
  • the processor 802 may determine, according to the gradient of the load function, at least one candidate average uplink load, determine a minimum one of the at least one candidate average uplink load as an average uplink load to be adjusted by the first cell cluster, and determine the The uplink power control parameter corresponding to the average uplink load to be adjusted is an uplink power control adjustment parameter of the first cell cluster.
  • the at least one candidate average uplink load is an average uplink load corresponding to a minimum value point of the load function.
  • the determining, by the processor 802, the smallest one of the at least one candidate average uplink load as the average uplink load of the first cell cluster to be adjusted may be implemented as: obtaining the load function with a gradient of zero At least one extreme point of time, and determining that an average uplink load corresponding to one of the at least one extreme points is one of the at least one candidate average uplink load.
  • the determining, by the processor 802, the smallest one of the at least one candidate average uplink load as the average uplink load to be adjusted by the first cell cluster may be implemented as: randomly selecting or selecting according to a predetermined policy.
  • the load is one of the at least one candidate average uplink load, where one of the at least one uplink power control adjustment parameter includes an uplink power control adjustment parameter of each cell in the cell cluster.
  • the determining, by the processor 802, the smallest one of the at least one candidate average uplink load as the average uplink load to be adjusted by the first cell cluster may be implemented as: One of the loads performs a random offset on the curve corresponding to the load function to obtain an offset uplink power control parameter of the first cell cluster, and determines the offset uplink power control parameter according to the negative gradient curve of the gradient formula at the load.
  • the average uplink load corresponding to the minimum value point of the function convergence is the candidate average uplink load.
  • the cooperative node device 800 can also perform the functions and the embodiments of FIG. 1 and FIG. 2 to implement the functions of the cooperative node in the embodiments shown in FIG. 4, FIG. 5 and FIG. .
  • the disclosed systems, devices, and methods may be implemented in other ways.
  • the device embodiments described above are merely illustrative.
  • the division of the unit is only a logical function division.
  • there may be another division manner for example, multiple units or components may be combined or Can be integrated into another system, or some features can be ignored, or not executed.
  • the coupling or direct coupling or communication connection shown or discussed may be an indirect coupling or communication connection through some interface, device or unit, and may be electrical, mechanical or otherwise.
  • the units described as separate components may or may not be physically separate, and the components displayed as units may or may not be physical units, that is, may be located in one place, or may be distributed to multiple network units. Some or all of the units may be selected according to actual needs to achieve the objectives of the solution of the embodiment.
  • each functional unit in each embodiment of the present invention may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.
  • the functions may be stored in a computer readable storage medium if implemented in the form of a software functional unit and sold or used as a standalone product.
  • the technical solution of the present invention which is essential or contributes to the prior art, or a part of the technical solution, may be embodied in the form of a software product, which is stored in a storage medium, including
  • the instructions are used to cause a computer device (which may be a personal computer, server, or network device, etc.) to perform all or part of the steps of the methods described in various embodiments of the present invention.
  • the storage medium includes: a USB flash drive, a removable hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, and the like, which can store program codes.

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Abstract

Selon un mode de réalisation, la présente invention porte sur un procédé de commande de puissance de liaison montante et un appareil de point de commande intégré. Le procédé consiste à: obtenir les informations de charge de liaison montante d'une pluralité de cellules; identifier des cellules d'un premier type et des cellules d'un second type parmi la pluralité de cellules; déterminer au moins un groupe de cellules en fonction d'une relation de voisinage des cellules du premier type, des cellules du second type et de la pluralité de cellules, tout groupe de cellules dudit groupe de cellules comprenant au moins une cellule du premier type, et la cellule du premier type ou la cellule du second type qui est voisine de ladite cellule du premier type; et effectuer une optimisation conjointe de paramètres de commande de puissance de liaison montante sur chaque groupe de cellules dudit groupe de cellules. Selon le procédé et le dispositif de commande de puissance de liaison montante décrits dans le mode de réalisation de la présente invention, une optimisation conjointe de paramètres de commande de puissance de liaison montante est effectuée par distinction de cellules surchargées sur la base des informations de charge de liaison montante de la pluralité de cellules et attribution des cellules surchargées et de cellules à faible charge voisines de celles-ci aux groupes de cellules, et en conséquence un brouillage de liaison montante dans les groupes de cellules peut être coordonné d'une manière efficace.
PCT/CN2013/085333 2013-05-23 2013-10-16 Procede et dispositif de commande de puissance de liaison montante WO2014187068A1 (fr)

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